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Comparison of methods of estimation for parameters of generalized Poisson distribution through simulation study

机译:仿真研究的广义泊松分布参数估计方法的比较

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In this article, we take a brief overview of different functional forms of generalized Poisson distribution (GPD) and various methods of its parameter estimation found in the literature. We compare the method of moment estimation (ME) and maximum likelihood estimation (MLE) of parameters of GPD through simulation study in terms of bias, MSE and covariance. To simulate random numbers from GPD, we develop a Matlab function gpoissrnd(). The simulation study leads to the important conclusion that the ME performs better or equally good as compared to MLE when sample size is small.Further we fit the GPD to various datasets in literature using both estimation methods and observe that the results do not differ significantly even though the sample size is large. Overall, we conclude that for GPD, use of ME in place of MLE will lead to almost similar results. The computational simplicity in calculation of ME as compared to MLE also gives support to the use of ME in case of GPD for practitioners.
机译:在本文中,我们简要概述了广义泊松分布(GPD)的不同功能形式以及文献中发现的各种参数估计方法。通过仿真研究,从偏倚,MSE和协方差方面比较了GPD参数的矩估计(ME)和最大似然估计(MLE)的方法。为了从GPD模拟随机数,我们开发了Matlab函数gpoissrnd()。仿真研究得出一个重要的结论,即当样本量较小时,ME的性能优于MLE。此外,我们使用两种估计方法将GPD拟合到文献中的各种数据集,并且观察到即使结果也没有显着差异尽管样本量很大。总体而言,我们得出结论,对于GPD,使用ME代替MLE将导致几乎相似的结果。与MLE相比,ME计算的计算简便性也为从业人员在GPD情况下使用ME提供了支持。

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